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Nanowires With Promise for Photovoltaics

机译:承诺用于光伏的纳米线

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摘要

Solar energy harvesting for electricity production is regarded as a fully credible future energy source: plentiful and without serious environmental concerns. The breakthrough for solar energy technology implementation has, however, been hampered by two issues: the conversion efficiency of light into electricity and the solar panel production cost. The use of III–V nanowires (NWs) in photovoltaics allows to respond to both these demands. They offer efficient light absorption and significant cost reduction. These low-dimensional structures can be grown epitaxially in dense NW arrays directly on silicon wafers, which are abundant and cheaper than the germanium substrates used for triple-junction solar cells today. For planar structures, lattice matching poses a strong restriction on growth. III–V NWs offer to create highly efficient multijunction devices, since multiple materials can be combined to match the solar spectrum without the need of tightly controlled lattice matching. At the same time, less material is required for NW-based solar cells than for planar-based architecture. This approach has potential to reach more than 50% in efficiency. Here, we describe our work on NW tandem solar cells, aiming toward two junctions absorbing different parts of the solar spectrum, connected in series via a tunnel diode.
机译:用于发电的太阳能收集被认为是完全可靠的未来能源:充足且没有严重的环境问题。但是,太阳能技术实施的突破受到两个问题的阻碍:光到电的转换效率和太阳能电池板的生产成本。在光伏中使用III–V纳米线(NW)可以满足这两个需求。它们提供有效的光吸收并显着降低成本。这些低维结构可以直接在硅晶片上以密集的NW阵列外延生长,而硅晶片比如今用于三结太阳能电池的锗基底便宜且价格便宜。对于平面结构,晶格匹配对生长有严格的限制。 III–V NW可以创建高效的多结器件,因为可以将多种材料组合在一起以匹配太阳光谱,而无需严格控制晶格匹配。同时,与基于平面的架构相比,基于NW的太阳能电池所需的材料更少。这种方法有可能达到50%以上的效率。在这里,我们描述了我们在NW串联太阳能电池上的工作,其目标是通过隧道二极管串联连接的两个吸收太阳光谱不同部分的结。

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